Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1289674 | Journal of Power Sources | 2010 | 5 Pages |
Abstract
A carbon-supported binary Pt3Sn catalyst has been prepared using a modified polymeric precursor method under controlled synthesis conditions. This material was characterized using X-ray diffraction (XRD), and the results indicate that 23% (of a possible 25%) of Sn is alloyed with Pt, forming a dominant Pt3Sn phase. Transmission electron microscopy (TEM) shows good dispersion of the electrocatalyst and small particle sizes (3.6 nm ± 1 nm). The polarization curves for a direct ethanol fuel cell using Pt3Sn/C as the anode demonstrated improved performance compared to that of a PtSn/C E-TEK, especially in the intrinsic resistance-controlled and mass transfer regions. This behavior is probably associated with the Pt3Sn phase. The maximum power density for the Pt3Sn/C electrocatalyst (58 mW cmâ2) is nearly twice that of a PtSn/C E-TEK electrocatalyst (33 mW cmâ2). This behavior is attributed to the presence of a mixed Pt9Sn and Pt3Sn alloy phase in the commercial catalysts.
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
R.F.B. De Souza, L.S. Parreira, D.C. Rascio, J.C.M. Silva, E. Teixeira-Neto, M.L. Calegaro, E.V. Spinace, A.O. Neto, M.C. Santos,